If $2 L$ $2 L$ of a gas at room temperature exerts a pressure of $28 k P a$ $28 kPa$ on its container, what pressure will the gas exert if the container's volume changes to $7 L$ $7 L$ ?

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If $2 L$ $2 L$ of a gas at room temperature exerts a pressure of $28 k P a$ $28 kPa$ on its container, what pressure will the gas exert if the container's volume changes to $7 L$ $7 L$ ?

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Answer 1 · 2016-09-26T03:48:57

$8 k P a$ $8kPa$

Explanation:

Let's identify the known and unknown variables:

$Knowns:$ $color(blue)("Knowns:")$
- Initial Volume
- Final Volume
- Initial Pressure

$Unknowns:$ $color(pink)("Unknowns:")$
- Final Pressure

We can obtain the answer using Boyle's Law:
![http://www.physbot.co.uk](https://useruploads.socratic.org/UJsS5MPGQoqQy3ilFIfp_6797833_orig.png)

The letters i and f represent the initial and final conditions, respectively.

All we have to do is rearrange the equation to solve for the final pressure.

We do this by dividing both sides by $V_{f}$ $V_f$ in order to get $P_{f}$ $P_f$ by itself like this:
$P_{f} = \frac{P_{i} \times V_{i}}{V_{f}}$ $P_f=(P_ixxV_i)/V_f$

Now all we do is plug in the values and we're done!

$P_f= (28kPa xx 2cancel"L")/(7\cancel"L")$ = $8kPa$

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If $2 L$ $2 L$ of a gas at room temperature exerts a pressure of $28 k P a$ $28 kPa$ on its container, what pressure will the gas exert if the container's volume changes to $7 L$ $7 L$ ?

1 Answer

Explanation:

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If $2 L$ $2 L$ of a gas at room temperature exerts a pressure of $28 k P a$ $28 kPa$ on its container, what pressure will the gas exert if the container's volume changes to $7 L$ $7 L$ ?